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Published on: November 7, 2012
Temperature optimization for reactor operation with chitin-immobilized lactase under modulated inactivation
1School of Biochemical Engineering, Universidad Católica de Valparaíso, P.O. Box 4059, Valparaíso, Chile
Enzyme and Microbial Technology
|July 19, 2000
Summary
This study optimized operating temperatures for chitin-immobilized lactase (CIL) by analyzing kinetic and inactivation parameters. Temperature significantly impacts CIL
Area of Science:
- Biotechnology
- Enzyme kinetics
- Biochemical engineering
Background:
- Lactase enzyme is crucial for lactose hydrolysis.
- Enzyme stability and activity are temperature-dependent.
- Immobilized enzymes offer advantages in industrial applications.
Purpose of the Study:
- To determine temperature effects on kinetic and inactivation parameters of chitin-immobilized lactase (CIL) from Kluyveromyces marxianus.
- To model enzyme inactivation mechanisms and the influence of galactose and lactose.
- To optimize the operating temperature for a sequential batch reactor using CIL.
Main Methods:
- Kinetic and inactivation parameters were measured across a range of temperatures.
- Enzyme inactivation was modeled using a two-stage series mechanism.
- Temperature-explicit functions were developed for optimization.
Main Results:
- Maximum reaction rate, Michaelis constant, inhibition constant, and inactivation rates increased with temperature.
- Galactose positively modulated inactivation, while lactose negatively modulated it.
- Temperature optimization functions were integrated into a cost-based objective function.
Conclusions:
- Temperature-dependent kinetic and inactivation parameters are essential for optimizing CIL reactor operation.
- Galactose and lactose modulate CIL inactivation differently with temperature.
- Developed software enables sensitivity analysis for CIL operational criteria.
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